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I got the solution; however, I feel like the code is pretty awful. This is within my first 50 hours using any programming language...please bear with me.

The Problem:

Each new term in the Fibonacci sequence is generated by adding the previous two terms. By starting with 1 and 2, the first 10 terms will be: 1, 2, 3, 5, 8, 13, 21, 34, 55, 89, ... By considering the terms in the Fibonacci sequence whose values do not exceed four million, find the sum of the even-valued terms.

My Solution:

<?php

//if number is odd, returns false
function setOddsZero($n) {
    $test = ($n&1); //0 = even, 1 = odd
    if($test == 1) {
        return false;
    } else {
        $n = $n;
    }
}


$numbers=array(1,);
for($i>0; $i<=100; $i++) {
$numbers[$i] += (($numbers[$i-2])+($numbers[$i-1]));
  if (($numbers[$i]) >= 4000000) {
      echo $total;
      die;
  } else {
      if((setOddsZero($numbers[$i]))===false) {
          $total += 0;
      }else {
          $total += $numbers[$i];
      }
  }
}
?>
share|improve this question
    
So, what is your question? –  Nanne Feb 19 '12 at 11:22
2  
need to indent better –  dqhendricks Feb 19 '12 at 11:22
    
setOddsZero needs a better name like isOdd –  dqhendricks Feb 19 '12 at 11:25
    
why do you += 0 if odd is false? –  dqhendricks Feb 19 '12 at 11:28
    
@dqhendricks, thanks for the helpful feedback. The array ends up cancelling, because i initiate the for loop only for $i>0, so the '1' in the array doesn't do anything. the +=0 was just a poor statement. Also, please excuse the tabs...first post here. Cheers :) –  php_newb_88 Feb 19 '12 at 11:41

4 Answers 4

up vote 1 down vote accepted
$fibos = array(1,2);
$sum_of_evens = 0;

while ($fibos[1] < 4000000)
{
    $fibos []= array_shift($fibos) + $fibos[0];
    $sum_of_evens += ($fibos[1] & 1 == 0) ? $fibos[1] : 0;
}

echo $sum_of_evens;

Less stack-pushy-shify (and thus more efficient) approach, as suggested by meze:

$prevprev = 1;
$prev = 2;
$sum_of_evens = 0;

while ($prev < 4000000)
{
    list($prevprev, $prev) = array($prev, ($prevprev + $prev));
    $sum_of_evens += ($prev & 1 == 0) ? $prev : 0;
}

Edit: Modified the code to use & 1 instead of % 2, cf. this thread at devshed.

share|improve this answer
    
Nice, wasn't aware of the array_shift function –  php_newb_88 Feb 19 '12 at 11:48
    
This is an inefficient solution ;s –  meze Feb 19 '12 at 11:51
    
@meze From the "number of operations required" perspective, you're probably right. But it's concise. Shifting values by hand like $prevprev = $prev; $prev = $current just feels really awkward to me when using a higher level language. –  vzwick Feb 19 '12 at 11:55
    
Then you could replace it with list ($prevprev, $prev) = array($prev, $current); –  meze Feb 19 '12 at 12:15
    
@meze Personally, I hate list() (sersiously, assigning values to something that looks like a function call? Meh!), you're right though. Updated the answer to reflect your suggestion. –  vzwick Feb 19 '12 at 12:30

There is no need to remember all the numbers.

$num0 = 1;
$num1 = 1;
$num2 = 0;
$odd = 0;
do
{
    //The way you count recurents in cycles
    $num2 = $num1 + $num0;

    $num0 = $num1;
    $num1 = $num2;

    //Classic check wheter the number is odd o even
    if($num2 % 2 == 1)
        $odd++;
} while($num2 < 4000000);
share|improve this answer
    
much neater. The odd check is much cleaner too. –  php_newb_88 Feb 19 '12 at 11:34
    
find the sum of the even-valued terms vs. $odd++ doesn't seem right ... Should be $odd += $num2, also your even/odd check is borked, should be ($num2 % 2) == 0 –  vzwick Feb 19 '12 at 11:37
    
However, output doesn't result in the solution. cheers :) –  php_newb_88 Feb 19 '12 at 11:42
    
The mod call is a bad idea. Project euler is usually about avoiding divisions. An alternative to it's use might be $odd != $odd –  SOliver Feb 19 '12 at 12:19

PHP is a poorly designed language. I guess that you're learning it because you want to work on server side web programming. Check out rails and django instead.

share|improve this answer

This is my solution using a for loop:

$a = 0;
$b = 1;
$p = 0;
$limit = 4000000;

for($i=0; $p < $limit; $i++) {
    $sum = $a+$b;
    $a = $b;
    $b = $sum;

    // Checks if $a is a multiple of 2
    if($a%2 == 0) {
        $p += $a;
    }
}
echo $p;
share|improve this answer

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